A-Level Edexcel Maths Pure Laws of Logarithms: Given that $k$ is a negative con

Given that $k$ is a negative constant and that the function $f(x)$ is defined by $$f(x) = 2 - \frac{(x - 5k)(x - k)}{x^2 - 3kx + 2k^2}, \quad x \geq 0$$ (a) show that $f(x) = \frac{x + k}{x - 2k}$ (b) Hence find $f' (x)$, giving your answer in its simplest form - Edexcel - A-Level Maths Pure - Question 2 - 2014 - Paper 5

Question 2

$Given-that-$k$-is-a-negative-constant-and-that-the-function-$f(x)$-is-defined-by--$$f(x)-=-2---\frac{(x---5k)(x---k)}{x^2---3kx-+-2k^2},-\quad-x-\geq-0$$--(a)-show-that-$f(x)-=-\frac{x-+-k}{x---2k}$--(b)-Hence-find-$f'-(x)$,-giving-your-answer-in-its-simplest-form-Edexcel-A-Level Maths Pure-Question 2-2014-Paper 5.png$

Given that $k$ is a negative constant and that the function $f(x)$ is defined by $$f(x) = 2 - \frac{(x - 5k)(x - k)}{x^2 - 3kx + 2k^2}, \quad x \geq 0$$ (a) show t... show full transcript

Worked Solution & Example Answer:Given that $k$ is a negative constant and that the function $f(x)$ is defined by $$f(x) = 2 - \frac{(x - 5k)(x - k)}{x^2 - 3kx + 2k^2}, \quad x \geq 0$$ (a) show that $f(x) = \frac{x + k}{x - 2k}$ (b) Hence find $f' (x)$, giving your answer in its simplest form - Edexcel - A-Level Maths Pure - Question 2 - 2014 - Paper 5

Step 1

show that $f(x) = \frac{x + k}{x - 2k}$

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Answer

To determine whether ( f(x) ) is increasing or decreasing, we examine the sign of ( f'(x) ).

We have: $f'(x) = \frac{-3k}{(x - 2k)^2}$

Since ( k ) is negative, ( -3k ) is positive. The denominator ( (x - 2k)^2 ) is always positive for ( x \geq 0 ). Therefore, ( f'(x) > 0 ) for all valid values of ( x ).

This indicates that ( f(x) ) is an increasing function over the specified domain.

show that $f(x) = \frac{x + k}{x - 2k}$

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